Power Availability of PV plus Thermal Batteries in real-world electric power grids
Odin Foldvik Eikeland, Colin C. Kelsall, Kyle Buznitsky, Shomik Verma,, Filippo Maria Bianchi, Matteo Chiesa, Asegun Henry

TL;DR
This paper models the integration of photovoltaic (PV) systems with thermal energy storage in real-world power grids, demonstrating how storage size and CO2 reduction scenarios impact power availability and system decarbonization.
Contribution
It introduces a modeling approach for PV plus thermal storage in actual grids, highlighting cost-effective deployment and its role in renewable energy dispatchability and decarbonization.
Findings
Power availability increases with storage size.
CO2 reduction scenarios significantly boost power availability.
Storage use shifts under different emission constraints.
Abstract
As variable renewable energy sources comprise a growing share of total electricity generation, energy storage technologies are becoming increasingly critical for balancing energy generation and demand. In this study, we modeled an existing thermal energy storage unit with estimated capital costs that are sufficiently low to enable large-scale deployment in the electric power system. Our analysis emphasizes the value of using such units to cost-effectively improve renewable energy dispatchability. This study modeled an existing real-world grid rather than simulating hypothetical future electric power systems. The storage unit coupled with a photovoltaic (PV) system was modeled with different storage capacities, whereas each storage unit size had various discharge capacities. The modeling was performed under a baseline case with no emission constraints and under hypothetical scenarios…
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Taxonomy
TopicsIntegrated Energy Systems Optimization · Smart Grid Energy Management · Electric Power System Optimization
